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A computational model of Purkinje fibre single cell electrophysiology: implications for the long QT syndrome

机译:浦肯野纤维单细胞电生理学的计算模型:对长QT综合征的启示

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摘要

Computer modelling has emerged as a particularly useful tool in understanding the physiology and pathophysiology of cardiac tissues. Models of ventricular, atrial and nodal tissue have evolved and include detailed ion channel kinetics and intercellular Ca2+ handling. Purkinje fibre cells play a central role in the electrophysiology of the heart and in the genesis of cardiac arrhythmias. In this study, a new computational model has been constructed that incorporates the major membrane currents that have been isolated in recent experiments using Purkinje fibre cells. The model, which integrates mathematical models of human ion channels based on detailed biophysical studies of their kinetic and voltage-dependent properties, recapitulates distinct electrophysiological characteristics unique to Purkinje fibre cells compared to neighbouring ventricular myocytes. These characteristics include automaticity, hyperpolarized voltage range of the action potential plateau potential, and prolonged action potential duration. Simulations of selective ion channel blockade reproduce responses to pharmacological challenges characteristic of isolated Purkinje fibres in vitro, and importantly, the model predicts that Purkinje fibre cells are prone to severe arrhythmogenic activity in patients harbouring long QT syndrome 3 but much less so for other common forms of long QT. This new Purkinje cellular model can be a useful tool to study tissue-specific drug interactions and the effects of disease-related ion channel dysfunction on the cardiac conduction system.
机译:计算机建模已成为理解心脏组织的生理学和病理生理学的一种特别有用的工具。心室,心房和淋巴结组织的模型已经进化,包括详细的离子通道动力学和细胞间Ca 2 + 处理。浦肯野纤维细胞在心脏的电生理和心律失常的发生中起着核心作用。在这项研究中,构建了一个新的计算模型,该模型结合了使用浦肯野纤维细胞在最近的实验中分离出的主要膜电流。该模型基于对人体离子通道的动力学和电压依赖性特性的详细生物物理研究,整合了人类离子通道的数学模型,概括了浦肯野纤维细胞与周围心室肌细胞相比独特的独特电生理特征。这些特性包括自动性,动作电位平稳电位的超极化电压范围和延长的动作电位持续时间。选择性离子通道阻滞的模拟在体外重现了对分离的Purkinje纤维的药理挑战的响应,并且重要的是,该模型预测,Purkinje纤维细胞在患有长QT综合征3的患者中倾向于出现严重的心律失常活性,而对于其他常见形式则更少长QT。这种新的浦肯野细胞模型可以成为研究组织特异性药物相互作用以及疾病相关离子通道功能障碍对心脏传导系统的影响的有用工具。

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